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US20030187601A1 - Method for calibrating a wideband direction finding system - Google Patents

Method for calibrating a wideband direction finding system
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US20030187601A1
US20030187601A1US09/941,706US94170601AUS2003187601A1US 20030187601 A1US20030187601 A1US 20030187601A1US 94170601 AUS94170601 AUS 94170601AUS 2003187601 A1US2003187601 A1US 2003187601A1
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gain
wideband
time
data frame
phase
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US6700537B2 (en
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Martial Dufour
Francois Patenaude
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Canada Minister of Communications
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Canada Minister of Communications
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Assigned to HER MAJESTY IN RIGHT OF CANADA AS REPRESENTED BY THE MINISTER OF COMMUNICATIONSreassignmentHER MAJESTY IN RIGHT OF CANADA AS REPRESENTED BY THE MINISTER OF COMMUNICATIONSASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS).Assignors: DUFOUR, MARTIAL, PATENAUDE, FRANCOIS
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Abstract

The invention is a method of calibrating the sensor system of a wideband direction finder using a noise source. The sensor system includes at least two wideband tuners, and an analog/digital (A/D) converter connected to each wideband tuner. The calibration method involves selecting a common set of center frequencies for each of the wideband tuners. The wideband tuners receive a signal from the noise source on a per data frame basis. The passband of the received signal is then divided into a number of time-sampled data frames. For each time-sampled data frame, both a gain variation and a phase variation are calculated for the noise received at each wideband tuner. Gain and phase differences between the signal received by each wideband tuner within the same frame are compared. Based on the time-sampled data collected, the phase and gain differences for the signals received at the tuners which have not been previously mapped can be determined. As a result, this calibration method determines a series of calibration factors for each frame, and for a wide range of frequencies.

Description

Claims (9)

We claim:
1. A method of calibrating a sensor system of a wideband direction finder having at least two antenna elements using a noise source, the direction finder having at least two arms, each arm having a wideband tuner for receiving a noise on a per data frame basis from the noise source, with each arm coupled to the data processing means, the method including the steps of:
a) selecting a set of centre frequencies common for all wideband tuners in the direction finder;
b) dividing a passband of the noise source into a number of time-sampled data frames, such that the dividing is dependent on the centre frequencies;
c) for each time-sampled data frame received by each arm:
c1) reading a gain and a phase of the noise at each wideband tuner for a given frequency;
c2) processing the gain and the phase for each time-sampled data frame, to transform the gain and the phase into the frequency domain and to obtain intermediate results;
c3) calculating a gain difference and a phase difference between the intermediate results output from each arm;
c4) repeating steps c1) to c3) for each given frequency in a chosen group of frequencies, the chosen group of frequencies being within a frequency range of the time-sample data frame; and
c5) averaging the gain and the phase difference obtained in step c4) for the time-sampled data frame to obtain a calibration factor having a gain component and a phase component; and
d) adjusting the sensor system based on the calibration factor;
wherein a passband of the noise source covers at least one portion of a desired radio frequency band.
2. A method of calibrating a sensor system of a wideband direction finder having at least two antenna elements by using a noise source, the direction finder having at least two arms, each arm having a wideband tuner for receiving a noise signal on a per data frame basis from the noise source, and an analog/digital converter, the wideband tuner being coupled to the analog/digital converter, with each arm coupled to the data processing means through the analog/digital converter, the method including the steps of:
a) coupling the noise source to the each wideband tuner in each arm;
b) selecting a set of centre frequencies common for all wideband tuners in the direction finder;
c) dividing a passband of the noise source into a number of time sampled data frames, such that the dividing is dependent on the centre frequencies;
d) for each time-sampled data frame received by each arm:
d1) converting the noise signal into a digital noise signal for a given frequency;
d2) processing the digital noise signal to transform the digital noise signal into the frequency domain;
d3) reading a gain and a phase of a transformed digital noise signal for each time-sampled data frame to obtain intermediate results;
d4) calculating a gain difference and a phase difference between the intermediate results output from each arm;
d5) repeating steps d1) to d4) for each given frequency in a chosen group of frequencies, the chosen group of frequencies being within a frequency range of the time-sampled data frame;
d6) averaging the gain and the phase difference obtained in step d5) for the time-sampled data frame to obtain a calibration factor having a gain component and a phase component; and
e) adjusting the sensor system based on the calibration factor;
wherein a passband of the noise source covers at least one portion of a desired radio frequency band.
3. A method as defined inclaim 2, wherein step d1) for a first time-sampled data frame is executed in parallel with step d2) for a second time-sampled data frame.
4. A method as defined inclaim 2, wherein each wideband tuner receives a noise signal for the time-sampled data frame in a sequential order along the passband, such that frequencies covered by a succeeding time-sampled data frame are higher than frequencies covered by a preceding time-sampled data frame.
5. A method as defined inclaim 2, wherein for each time-sampled frame, a scanning frequency region for the frame overlaps a portion of an immediately preceding frame and a portion of an immediately succeeding frame.
6. A method of calibrating a sensor system of a wideband direction finder having at least two antenna elements using a noise source, the direction finder having at least two arms, each arm having a wideband tuner for receiving a noise on a per data frame basis from the noise source, with each arm coupled to the data processing means, the method including the steps of:
a) selecting a set of centre frequencies common for all wideband tuners in the direction finder;
b) dividing a passband of the noise source into a number of time-sampled data frames such that the dividing is dependent on the centre frequencies;
c) for each time-sampled data frame received by each arm:
c1) reading a gain and a phase of the noise at each wideband tuner for a given frequency;
c2) processing the gain and the phase for each time-sampled data frame to transform the gain and the phase into the frequency domain and to obtain intermediate results;
c3) calculating a gain difference and a phase difference between the intermediate results output from each arm;
c4) repeating steps c1) to c3) for each given frequency in a chosen group of frequencies, the chosen group of frequencies being within a frequency range of the time-sample data frame;
c5) interpolating the gain and the phase difference obtained in step c4) for the time-sampled data frame to obtain a calibration factor for a frequency not part of the chosen group of frequencies, the calibration factor having a gain component and a phase component; and
d) adjusting the wideband tuners based on the calibration factor;
wherein a passband of the noise source covers at least one portion of a desired radio frequency band.
7. A computer readable media having embodied thereon computer readable and computer executable instructions for a method of calibrating a sensor system of a wideband direction finder having at least two antenna elements using a noise source, the direction finder having at least two arms, each arm having a wideband tuner for receiving a noise on a per data frame basis from the noise source, with each arm coupled to the data processing means, the method including the steps of:
a) selecting a set of centre frequencies common for all wideband tuners in the direction finder;
b) dividing a passband of the noise source into a number of time-sampled data frames, such that the dividing is dependent on the centre frequencies:
c) for each time-sampled data frame received by each arm:
c1) reading a gain and a phase of the noise at each wideband tuner for a given frequency;
c2) processing the gain and the phase for each time-sampled data frame, to transform the gain and the phase into the frequency domain and to obtain intermediate results;
c3) calculating a gain difference and a phase difference between the intermediate results output from each arm;
c4) repeating steps c1) to c3) for each given frequency in a chosen group of frequencies, the chosen group of frequencies being within a frequency range of the time-sample data frame;
c5) averaging the gain and the phase difference obtained in step c4) for the time-sampled data frame to obtain a calibration factor having a gain component and a phase component; and
d) adjusting the wideband tuners based on the calibration factor;
wherein a passband of the noise source covers at least one portion of a desired radio frequency band.
8. A computer system constructed and configured to execute computer readable and computer executable instructions having embodied therein a method of calibrating a sensor system of a wideband direction finder having at least two antenna elements using a noise source, the direction finder having at least two arms, each arm having a wideband tuner for receiving a noise on a per data frame basis from the noise source, with each arm coupled to the data processing means, the method including the steps of:
a) selecting a set of centre frequencies common for all wideband tuners in the direction finder;
b) dividing a passband of the noise source into a number of time-sampled data frames, such that the dividing is dependent on the centre frequencies;
c) for each time-sampled data frame received by each arm:
c1) reading a gain and a phase of the noise at each wideband tuner for a given frequency;
c2) processing the gain and the phase for each time-sampled data frame, to transform the gain and the phase into the frequency domain and to obtain intermediate results;
c3) calculating a gain difference and a phase difference between the intermediate results output from each arm;
c4) repeating steps c1) to c3) for each given frequency in a chosen group of frequencies, the chosen group of frequencies being within a frequency range of the time-sample data frame;
c5) averaging the gain and the phase difference obtained in step c4) for the time-sampled data frame to obtain a calibration factor having a gain component and a phase component; and
d) adjusting the wideband tuners based on the calibration factor;
wherein a passband of the noise source covers at least one portion of a desired radio frequency band.
9. A system for calibrating a sensor system of a wideband direction finder having at lest two antenna elements using a noise source, the direction finder having at least two arms, each arm having a wideband tuner for receiving a noise on a per data frame basis from the noise source, with each arm coupled to the data processing means, the system comprising:
means for selecting a set of centre frequencies common for all wideband tuners in the direction finder;
means for dividing a passband of the noise source into a number of time sampled data frames, such that the dividing is dependent on the centre frequencies;
means for reading a gain and a phase of the noise at each wideband tuner for a given frequency;
means for processing the gain and the phase for each time-sampled data frame, to transform the gain and the phase into the frequency domain and to obtain intermediate results;
means for calculating a gain difference and a phase difference between the intermediate results output from each arm;
means for averaging the gain and the phase difference for the time-sampled data frame to obtain a calibration factor having a gain component and a phase component; and
means for adjusting the wideband tuners based on the calibration factor.
US09/941,7062000-08-312001-08-30Method for calibrating a wideband direction finding systemExpired - LifetimeUS6700537B2 (en)

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US09/941,706US6700537B2 (en)2000-08-312001-08-30Method for calibrating a wideband direction finding system

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US22906200P2000-08-312000-08-31
US09/941,706US6700537B2 (en)2000-08-312001-08-30Method for calibrating a wideband direction finding system

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Cited By (7)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US20040203539A1 (en)*2002-12-112004-10-14Benes Stanley J.Method and mobile station for autonomously determining an angle of arrival (AOA) estimation
US20050215217A1 (en)*2004-03-262005-09-29Birgenheier Raymond AIF frequency response characterization employing overlapping frequency bands
US20060238413A1 (en)*2005-04-252006-10-26Elta Systems Ltd.Method and system for calibration of a radio direction finder
US20070287395A1 (en)*2004-08-112007-12-13Lars KarlssonMethod and signal intelligence collection system that reduces output data overflow in real-time
US20170181166A1 (en)*2015-12-182017-06-22Qualcomm IncorporatedRun Time Radio Frequency Calibration for Receive Chains in Mobile Devices
US20180279881A1 (en)*2017-03-312018-10-04Stephen A. McCalmontWearable sensor
CN114580243A (en)*2022-03-092022-06-03西安电子科技大学Broadband frequency sweeping method

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US7346126B2 (en)*2001-11-282008-03-18Telefonaktiebolaget L M Ericsson (Publ)Method and apparatus for channel estimation using plural channels
US7295808B2 (en)2002-09-052007-11-13Soliman Samir SMethod of and system for calibrating a repeater
FR3039343B1 (en)2015-07-232018-10-05Thales Sa DIPOSITIVE AND METHOD FOR CALIBRATING A BROADBAND RADIOFREQUENCY RECEPTION CHAIN
US10422846B2 (en)*2017-01-302019-09-24Rohde & Schwarz Gmbh & Co. KgMethod for calibrating a radio frequency test instrument and radio frequency test instrument

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Cited By (16)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US6978124B2 (en)*2002-12-112005-12-20Motorola, Inc.Method and mobile station for autonomously determining an angle of arrival (AOA) estimation
US20040203539A1 (en)*2002-12-112004-10-14Benes Stanley J.Method and mobile station for autonomously determining an angle of arrival (AOA) estimation
US20050215217A1 (en)*2004-03-262005-09-29Birgenheier Raymond AIF frequency response characterization employing overlapping frequency bands
US7310504B2 (en)*2004-03-262007-12-18Agilent Technologies, Inc.IF frequency response characterization employing overlapping frequency bands
US20070287395A1 (en)*2004-08-112007-12-13Lars KarlssonMethod and signal intelligence collection system that reduces output data overflow in real-time
GB2440864A (en)*2005-04-252008-02-13Elta Systems LtdMethod and system for calibration of a radio direction finder
WO2006114784A1 (en)*2005-04-252006-11-02Elta Systems Ltd.Method and system for calibration of a radio direction finder
US7312746B2 (en)2005-04-252007-12-25Elta Systems Ltd.Method and system for calibration of a radio direction finder
US20060238413A1 (en)*2005-04-252006-10-26Elta Systems Ltd.Method and system for calibration of a radio direction finder
AU2006241268B2 (en)*2005-04-252009-04-23Elta Systems Ltd.Method and system for calibration of a radio direction finder
JP4808248B2 (en)*2005-04-252011-11-02エルタ システムズ エルティーディー. Calibration method and calibration system for radio direction finder
KR101223712B1 (en)*2005-04-252013-01-18엘타 시스템즈 리미티드Method and system for calibration of a radio direction finder
US20170181166A1 (en)*2015-12-182017-06-22Qualcomm IncorporatedRun Time Radio Frequency Calibration for Receive Chains in Mobile Devices
US20180279881A1 (en)*2017-03-312018-10-04Stephen A. McCalmontWearable sensor
US10448831B2 (en)*2017-03-312019-10-22BraveHeart Wireless Inc.Wearable sensor
CN114580243A (en)*2022-03-092022-06-03西安电子科技大学Broadband frequency sweeping method

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Publication numberPublication date
CA2356476C (en)2010-02-02
US6700537B2 (en)2004-03-02
CA2356476A1 (en)2002-02-28

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